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Automatic Frequency Tuning Technology for Dual-Mass MEMS Gyroscope Based on a Quadrature Modulation Signal

机译:基于正交调制信号的双质量MEMS陀螺仪自动调谐技术

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摘要

In order to eliminate the frequency mismatch of MEMS (Microelectromechanical Systems) gyroscopes, this paper proposes a frequency tuning technology based on a quadrature modulation signal. A sinusoidal signal having a frequency greater the gyroscope operating bandwidth is applied to the quadrature stiffness correction combs, and the modulation signal containing the frequency split information is then excited at the gyroscope output. The effects of quadrature correction combs and frequency tuning combs on the resonant frequency of gyroscope are analyzed. The tuning principle based on low frequency input excitation is analyzed, and the tuning system adopting this principle is designed and simulated. The experiments are arranged to verify the theoretical analysis. The wide temperature range test (-20C–60C) demonstrates the reliability of the tuning system with a maximum mismatch frequency of less than 0.3 Hz. The scale factor test and static test were carried out at three temperature conditions (−20 C, room temperature, 60 C), and the scale factor, zero-bias instability, and angle random walk are improved. Moreover, the closed-loop detection method is adopted, which improves the scale factor nonlinearity and bandwidth under the premise of maintaining the same static performances compared with the open-loop detection by tuning.
机译:为了消除MEMS陀螺仪的频率失配,本文提出了一种基于正交调制信号的频率调谐技术。将频率大于陀螺仪工作带宽的正弦信号施加到正交刚度校正梳,然后在陀螺仪输出处激发包含分频信息的调制信号。分析了正交校正梳和频率调谐梳对陀螺仪谐振频率的影响。分析了基于低频输入激励的调谐原理,并设计并仿真了采用该原理的调谐系统。安排实验以验证理论分析。宽温度范围测试(-20 <数学xmlns:mml =“ http://www.w3.org/1998/Math/MathML” id =“ mm1” overflow =“ scroll”> C –60 mo C )证明了最大不匹配频率小于的调谐系统的可靠性0.3赫兹比例因子测试和静态测试是在三种温度条件下进行的(−20 <数学xmlns:mml =“ http://www.w3.org/1998/Math/MathML” id =“ mm3” overflow =“ scroll” > C,室温,60 < / mrow> C),并改善了比例因子,零偏置不稳定性和角度随机游动。此外,采用闭环检测方法,与通过调谐进行的开环检测相比,在保持相同静态性能的前提下,改善了比例因子的非线性和带宽。

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